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Non-local diffusion-weighted image super-resolution using collaborative joint information

机译:使用协作联合信息的非局部扩散加权图像超分辨率

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摘要

Due to the clinical durable scanning time and other physical constraints, the spatial resolution of diffusion-weighted magnetic resonance imaging (DWI) is highly limited. Using a post-processing method to improve the resolution of DWI holds the potential to improve the investigation of smaller white-matter structures and to reduce partial volume effects. In the present study, a novel non-local mean super-resolution method was proposed to increase the spatial resolution of DWI datasets. Based on a non-local strategy, joint information from the adjacent scanning directions was taken advantage of through the implementation of a novel weighting scheme. Besides this, an efficient rotationally invariant similarity measure was introduced for further improvement of high-resolution image reconstruction and computational efficiency. Quantitative and qualitative comparisons in synthetic and real DWI datasets demonstrated that the proposed method significantly enhanced the resolution of DWI, and is thus beneficial in improving the estimation accuracy for diffusion tensor imaging as well as high-angular resolution diffusion imaging.
机译:由于临床持久的扫描时间和其他物理限制,扩散加权磁共振成像(DWI)的空间分辨率受到很大限制。使用后处理方法来改善DWI的分辨率具有改进对较小的白色物质结构的研究并减少部分体积效应的潜力。在本研究中,提出了一种新颖的非局部均值超分辨率方法来提高DWI数据集的空间分辨率。基于非本地策略,通过实施新颖的加权方案来利用来自相邻扫描方向的联合信息。除此之外,还引入了有效的旋转不变相似性度量,以进一步提高高分辨率图像的重建和计算效率。在合成和实际DWI数据集中的定性和定量比较表明,该方法显着提高了DWI的分辨率,因此有利于提高扩散张量成像以及高角度分辨率扩散成像的估计精度。

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